Simulations of firn processes over the Greenland and Antarctic ice sheets: 1980–2021

Conversion of altimetry-derived ice-sheet volume change to mass requires an understanding of the evolution of the combined ice and air content within the firn column. In the absence of suitable techniques to observe the changes to the firn column across the entirety of an ice sheet, the firn column...

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Published in:The Cryosphere
Main Authors: B. Medley, T. A. Neumann, H. J. Zwally, B. E. Smith, C. M. Stevens
Format: Article in Journal/Newspaper
Language:English
Published: Copernicus Publications 2022
Subjects:
geo
Online Access:https://doi.org/10.5194/tc-16-3971-2022
https://tc.copernicus.org/articles/16/3971/2022/tc-16-3971-2022.pdf
https://doaj.org/article/cf51ae82b1974a16b0a606e5b9d53658
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spelling fttriple:oai:gotriple.eu:oai:doaj.org/article:cf51ae82b1974a16b0a606e5b9d53658 2023-05-15T13:45:15+02:00 Simulations of firn processes over the Greenland and Antarctic ice sheets: 1980–2021 B. Medley T. A. Neumann H. J. Zwally B. E. Smith C. M. Stevens 2022-10-01 https://doi.org/10.5194/tc-16-3971-2022 https://tc.copernicus.org/articles/16/3971/2022/tc-16-3971-2022.pdf https://doaj.org/article/cf51ae82b1974a16b0a606e5b9d53658 en eng Copernicus Publications doi:10.5194/tc-16-3971-2022 1994-0416 1994-0424 https://tc.copernicus.org/articles/16/3971/2022/tc-16-3971-2022.pdf https://doaj.org/article/cf51ae82b1974a16b0a606e5b9d53658 undefined The Cryosphere, Vol 16, Pp 3971-4011 (2022) geo envir Journal Article https://vocabularies.coar-repositories.org/resource_types/c_6501/ 2022 fttriple https://doi.org/10.5194/tc-16-3971-2022 2023-01-22T18:10:10Z Conversion of altimetry-derived ice-sheet volume change to mass requires an understanding of the evolution of the combined ice and air content within the firn column. In the absence of suitable techniques to observe the changes to the firn column across the entirety of an ice sheet, the firn column processes are typically modeled. Here, we present new simulations of firn processes over the Greenland and Antarctic ice sheets (GrIS and AIS) using the Community Firn Model and atmospheric reanalysis variables for more than four decades. A data set of more than 250 measured depth–density profiles from both ice sheets provides the basis of the calibration of the dry-snow densification scheme. The resulting scheme results in a reduction in the rate of densification, relative to a commonly used semi-empirical model, through a decreased dependence on the accumulation rate, a proxy for overburden stress. The 1980–2020 modeled firn column runoff, when combined with atmospheric variables from MERRA-2, generates realistic mean integrated surface mass balance values for the Greenland (+390 Gt yr−1) and Antarctic (+2612 Gt yr−1) ice sheets when compared to published model-ensemble means. We find that seasonal volume changes associated with firn air content are on average approximately 2.5 times larger than those associated with mass fluxes from surface processes for the AIS and 1.5 times larger for the GrIS; however, when averaged over multiple years, ice and air-volume fluctuations within the firn column are of comparable magnitudes. Between 1996 and 2019, the Greenland Ice Sheet lost nearly 5 % of its firn air content, indicating a reduction in the total meltwater retention capability. Nearly all (94 %) of the meltwater produced over the Antarctic Ice Sheet is retained within the firn column through infiltration and refreezing. Article in Journal/Newspaper Antarc* Antarctic Greenland Ice Sheet The Cryosphere Unknown Antarctic Greenland Merra ENVELOPE(12.615,12.615,65.816,65.816) The Antarctic The Cryosphere 16 10 3971 4011
institution Open Polar
collection Unknown
op_collection_id fttriple
language English
topic geo
envir
spellingShingle geo
envir
B. Medley
T. A. Neumann
H. J. Zwally
B. E. Smith
C. M. Stevens
Simulations of firn processes over the Greenland and Antarctic ice sheets: 1980–2021
topic_facet geo
envir
description Conversion of altimetry-derived ice-sheet volume change to mass requires an understanding of the evolution of the combined ice and air content within the firn column. In the absence of suitable techniques to observe the changes to the firn column across the entirety of an ice sheet, the firn column processes are typically modeled. Here, we present new simulations of firn processes over the Greenland and Antarctic ice sheets (GrIS and AIS) using the Community Firn Model and atmospheric reanalysis variables for more than four decades. A data set of more than 250 measured depth–density profiles from both ice sheets provides the basis of the calibration of the dry-snow densification scheme. The resulting scheme results in a reduction in the rate of densification, relative to a commonly used semi-empirical model, through a decreased dependence on the accumulation rate, a proxy for overburden stress. The 1980–2020 modeled firn column runoff, when combined with atmospheric variables from MERRA-2, generates realistic mean integrated surface mass balance values for the Greenland (+390 Gt yr−1) and Antarctic (+2612 Gt yr−1) ice sheets when compared to published model-ensemble means. We find that seasonal volume changes associated with firn air content are on average approximately 2.5 times larger than those associated with mass fluxes from surface processes for the AIS and 1.5 times larger for the GrIS; however, when averaged over multiple years, ice and air-volume fluctuations within the firn column are of comparable magnitudes. Between 1996 and 2019, the Greenland Ice Sheet lost nearly 5 % of its firn air content, indicating a reduction in the total meltwater retention capability. Nearly all (94 %) of the meltwater produced over the Antarctic Ice Sheet is retained within the firn column through infiltration and refreezing.
format Article in Journal/Newspaper
author B. Medley
T. A. Neumann
H. J. Zwally
B. E. Smith
C. M. Stevens
author_facet B. Medley
T. A. Neumann
H. J. Zwally
B. E. Smith
C. M. Stevens
author_sort B. Medley
title Simulations of firn processes over the Greenland and Antarctic ice sheets: 1980–2021
title_short Simulations of firn processes over the Greenland and Antarctic ice sheets: 1980–2021
title_full Simulations of firn processes over the Greenland and Antarctic ice sheets: 1980–2021
title_fullStr Simulations of firn processes over the Greenland and Antarctic ice sheets: 1980–2021
title_full_unstemmed Simulations of firn processes over the Greenland and Antarctic ice sheets: 1980–2021
title_sort simulations of firn processes over the greenland and antarctic ice sheets: 1980–2021
publisher Copernicus Publications
publishDate 2022
url https://doi.org/10.5194/tc-16-3971-2022
https://tc.copernicus.org/articles/16/3971/2022/tc-16-3971-2022.pdf
https://doaj.org/article/cf51ae82b1974a16b0a606e5b9d53658
long_lat ENVELOPE(12.615,12.615,65.816,65.816)
geographic Antarctic
Greenland
Merra
The Antarctic
geographic_facet Antarctic
Greenland
Merra
The Antarctic
genre Antarc*
Antarctic
Greenland
Ice Sheet
The Cryosphere
genre_facet Antarc*
Antarctic
Greenland
Ice Sheet
The Cryosphere
op_source The Cryosphere, Vol 16, Pp 3971-4011 (2022)
op_relation doi:10.5194/tc-16-3971-2022
1994-0416
1994-0424
https://tc.copernicus.org/articles/16/3971/2022/tc-16-3971-2022.pdf
https://doaj.org/article/cf51ae82b1974a16b0a606e5b9d53658
op_rights undefined
op_doi https://doi.org/10.5194/tc-16-3971-2022
container_title The Cryosphere
container_volume 16
container_issue 10
container_start_page 3971
op_container_end_page 4011
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